A Comprehensive Study on the Impact of Various Nano-gratings on MSM-PDs for Enhancement in the Light Absorption

Alif Islam, N. Das, Mohammad M. Uzzal
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引用次数: 1

Abstract

In this paper, we have analyzed metal-semiconductor-metal photodetectors (MSM-PDs) with different nano-grating structures or shapes to improve the light absorption capacity into the device in details for high-speed communication systems and networks. The plasmonic-based MSM-PD structure demonstrates a significant improvement in light absorption capacity for the developed device compared to conventional MSM-PDs i.e., devices that have not employed the nano-gratings. The light absorption capacity of the device is varied with the variation of geometrical shapes and parameters of the nano-gratings, such as the nano-grating height, slit width and so on. These nano-grating structures are assisting in light transmission through the central slit (i.e., subwavelength apertures) efficiently, resulting in the excitation of surface plasmon polaritons (SPPs) as the incident photons interact with the nano-gratings/ nano-corrugations. This improved light transmission in the central slit along with excited SPPs results in resonant light absorption in the device. This means the light trapped inside the central slit is triggered by the SPPs to a higher order magnitude. This causes the light absorption enhancement for the device, i.e., more light is transmitted through the device instead of reflecting back to the surface. The simulation results demonstrated that the light absorption enhancement factor (LAEF) for these devices have improved dramatically due to the nano-gratings. For modeling and simulation of these devices, Opti-FDTD tool is used which is based on finite difference time domain (FDTD) method. The application of these simulated devices is in the range of 800-850-nm. The simulation results are suitable for the design of nano-structured MSM-PDs that can be used in high-speed communication systems and sensor network systems.
各种纳米光栅对msm - pd增强光吸收影响的综合研究
在本文中,我们详细分析了不同纳米光栅结构或形状的金属-半导体-金属光电探测器(msm - pd),以提高高速通信系统和网络中器件的光吸收能力。与传统的MSM-PD(即未采用纳米光栅的器件)相比,基于等离子体的MSM-PD结构在光吸收能力方面有显着改善。器件的光吸收能力随纳米光栅的几何形状和参数(如纳米光栅的高度、狭缝宽度等)的变化而变化。这些纳米光栅结构有效地帮助光通过中心狭缝(即亚波长孔径),当入射光子与纳米光栅/纳米波纹相互作用时,导致表面等离子激元极化子(SPPs)的激发。这种改进了的光在中心狭缝中的传输以及被激发的SPPs导致了器件中的共振光吸收。这意味着被困在中央狭缝内的光被spp触发到更高的数量级。这使得器件的光吸收增强,即更多的光通过器件传输,而不是反射回表面。仿真结果表明,纳米光栅的加入大大提高了器件的光吸收增强因子(LAEF)。采用基于时域有限差分(FDTD)方法的Opti-FDTD工具对这些器件进行建模和仿真。这些模拟器件的应用范围在800-850 nm。仿真结果可用于高速通信系统和传感器网络系统的纳米结构msm - pd的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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